Numerical simulation of detonation propagation and extinction in two-phase gas-droplet ammonia fuel

被引:0
|
作者
Zhu, Ruixuan [1 ]
Li, Guangze [2 ]
Leach, Felix [1 ]
Davy, Martin [1 ]
机构
[1] Univ Oxford, Dept Engn Sci, Oxford OX1 3PJ, England
[2] Beihang Univ, Hangzhou Int Innovat Inst, Hangzhou 311115, Peoples R China
基金
中国国家自然科学基金;
关键词
Two-phase ammonia; Detonation propagation; Detonation extinction; Droplet number density; Droplet diameter; Inter-phase interaction; FLAME ACCELERATION; COMBUSTION; MIXTURES; TUBE; SEMIDISCRETE; DEFLAGRATION; INTEGRATION; TRANSITION; DIFFUSION; EMISSIONS;
D O I
10.1016/j.ijhydene.2024.09.432
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Numerical simulations of detonation propagation and extinction in ammonia droplet-laden premixed ammonia- oxygen gas are performed in a 2-D planar channel. The sustained propagation and ultimate quenching of detonation with perturbations from ammonia droplets are observed under lower and larger values of initial droplet number density ( , 0 ) and diameter (0), 0 ), respectively. The detonation always quenches under 0 = 15 mu m. The detonation propagation/extinction behaviour and cell structure are dependent on both 0 and ,0. , 0 . The positive correlations between droplet volume fraction, inter-phase mass, momentum, and energy transfers and 0 are more nonlinear than their counterparts of ,0. , 0 . The post-Mach stem region experiences higher-intensity detonative combustion and thus droplet evaporative, accelerative, and heating effects than the post-incident wave region. During the detonation extinction process, the detonation wave degenerates into detonative spots which then decouple into shock and reaction fronts; gaseous pressure, heat release rate, and nitric oxide volume fraction peaks decline.
引用
收藏
页码:218 / 229
页数:12
相关论文
共 50 条
  • [31] Numerical study on propagation characteristics of two-phase rotating detonation of premixed kerosene/air
    Liu, Qiuyue
    Wang, Fang
    Weng, Chunsheng
    Zhao, Qingjun
    Tuijin Jishu/Journal of Propulsion Technology, 45 (09):
  • [32] Eulerian-Lagrangian modelling of detonative combustion in two-phase gas-droplet mixtures with OpenFOAM: Validations and verifications
    Huang, Zhiwei
    Zhao, Majie
    Xu, Yong
    Li, Guangze
    Zhang, Huangwei
    FUEL, 2021, 286
  • [33] Effects of Water Mist Concentration and Droplet Size on Gas-Liquid Two-Phase Detonation
    Song, Yifan
    Zhang, Qi
    COMBUSTION SCIENCE AND TECHNOLOGY, 2024, 196 (16) : 4005 - 4022
  • [34] Gas-droplet turbulent velocity correlations and two-phase interaction in an axisymmetric jet laden with partly responsive droplets
    Ferrand, V
    Bazile, R
    Borée, J
    Charnay, G
    INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2003, 29 (02) : 195 - 217
  • [35] Peculiarities of propagation of the dispersed phase in a gas-droplet flow downstream of a pipe sudden expansion
    M. A. Pakhomov
    V. I. Terekhov
    Technical Physics, 2013, 58 : 185 - 191
  • [36] Numerical Simulation of Droplet Motion and Two-Phase Flow Field in an Oscillating Container
    Watanabe, Tadashi
    INTERNATIONAL JOURNAL OF MULTIPHYSICS, 2011, 5 (01) : 35 - 45
  • [37] Peculiarities of propagation of the dispersed phase in a gas-droplet flow downstream of a pipe sudden expansion
    Pakhomov, M. A.
    Terekhov, V. I.
    TECHNICAL PHYSICS, 2013, 58 (02) : 185 - 191
  • [38] Numerical simulation on two-phase flow in the powder fuel ramjet combustor
    Inst. of Aerospace and Material Engineering, National Univ. of Defense Technology, Changsha 410073, China
    Guti Houjian Jishu, 2007, 6 (474-477):
  • [39] Numerical simulation of high-pressure gas atomization of two-phase flow: Effect of gas pressure on droplet size distribution
    Arachchilage, Kalpana Hanthanan
    Haghshenas, Majid
    Park, Sharon
    Zhou, Le
    Sohn, Yongho
    McWilliams, Brandon
    Cho, Kyu
    Kumar, Ranganathan
    ADVANCED POWDER TECHNOLOGY, 2019, 30 (11) : 2726 - 2732
  • [40] Numerical modelling of detonation structure in two-phase flows
    Uphoff, U
    Hanel, D
    Roth, P
    SHOCK WAVES, 1996, 6 (01) : 17 - 20